In a linear guide comprising a guide housing (1, 16) configured as a profiled support, and at least one guide rail (2) fixed therein, a guide carriage (3) being supported for longitudinal displacement on the guide rail (2) while being connected to a running carriage (5, 17) that is situated partly outside the housing (1, 16) and extends through a longitudinal opening (7, 8, 18, 19) into the housing (1, 16), the linear guide comprising within the housing (1, 16), a drive for the longitudinal displacement of the guide carriage (3) and of the running carriage (5, 17), according to the invention, the guide housing (1, 16) is an extrusion molded profile made of aluminium and the drive is configured as an electromotor with one motor component arranged in the guide housing (1, 16) and one motor component arranged in the running carriage (5, 17).
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1. A linear guide comprising a guide housing (1, 16) configured as a profiled support that is an extrusion molded profile made of aluminium, and at least one guide rail (2) fixed therein, one or more guide carriages (3) being supported for longitudinal displacement on the guide rail (2) while being connected to a running carriage (5, 17) that is situated partly outside the housing (1, 16) and extends through a longitudinal opening (7, 8, 18, 19) into the housing (1, 16), the linear guide comprising within the housing (1, 16), a drive for the longitudinal displacement of the guide carriage (3) and of the running carriage (5, 17), said drive being configured as an electromotor with one motor component arranged in the guide housing (1, 16) and one motor component arranged in the running carriage (5, 17), characterized in that the longitudinal opening (7, 8, 18, 19) is closed by a cover strip (12, 13) made of anti-corrosive magnetic steel for which permanent magnet strips (14) are inserted into grooves of the guide housing (1, 16).
7. A linear guide comprising a guide housing (1, 16) configured as a profiled support that is an extrusion molded profile made of aluminum, and at least one guide rail (2) fixed therein, one or more guide carriages (3) being supported for longitudinal displacement on the guide rail (2) while being connected to a running carriage (5, 17) that is situated partly outside the housing (1, 16) and extends through a longitudinal opening (7, 8, 18, 19) into the housing (1, 16), the linear guide comprising within the housing (1, 16) a drive for the longitudinal displacement of the guide carriage (3) and of the running carriage (5, 17), said drive being configured as an electromotor with one motor component arranged in the guide housing (1, 16) and one motor component arranged in the running carriage (5, 17), characterized in that the longitudinal opening (7, 8, 18, 19) is closed by a cover strip (12, 13) made of anti-corrosive magnetic steel for which permanent magnet strips (14) are inserted into grooves of the guide housing (1, 16), the electromotor is configured as a motor operating after the principle of the synchronous motor, with the primary motor component (10) corresponding to the rotor and the secondary motor component (11) corresponding to the stator, the primary motor component (10) is arranged in the running carriage (5, 17) and the secondary motor component (11) is arranged in the guide housing (1, 16).
2. A linear guide according to
3. A linear guide according to
4. A linear guide according to
5. A linear guide according to
6. A linear guide according to
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The invention concerns a linear guide comprising a guide housing configured as a profiled support that is an extrusion molded profile made of aluminium, and at least one guide rail fixed therein, one or more guide carriages being supported for longitudinal displacement on the guide rail while being connected to a running carriage that is situated partly outside the housing and extends through a longitudinal opening into the housing, the linear guide comprising within the housing, a drive for the longitudinal displacement of the guide carriage and of the running carriage, said drive being configured as an electromotor with one motor component arranged in the guide housing and one motor component arranged in the running carriage.
Driven linear guides have been hitherto used mainly in the field of handling. New markets and uses open up, above all, when there is a demand for high displacement dynamics coupled with high positioning exactitude (overshoot-free positioning), simple mounting in existing structures or structural profiles, or for cantilevered installation. A ball screw drive does indeed achieve the required positioning exactitude but compared to a belt-driven linear guide, the achievable speed of the running carriage is limited to low values due to the limit rotational speed of the bearing and the critical speed of rotation of the spindle that is strongly length-dependent.
Conversely, with belt-driven linear guides, high speeds of displacement are achieved but only a poor positioning exactitude. The drawback of the low rigidity of this drive concept compared to a ball screw drive becomes apparent at high acceleration and a great number of cycles. This manifests itself in an overshooting of the targeted position by the running carriage.
A linear guide unit is known from the document DE 196 36 270 A1. For displacing the running carriage on the guide rail in the longitudinal direction thereof, this linear guide possesses a pneumatic linear drive that surrounds a cylinder space of elliptical cross-section arranged in a bottom wall of the guide housing. A piston is guided in this space and each of its two ends is connected to one side of the drive. Each side of the drive leads through a deflecting roller to one end of the running carriage. A differing air pressure loading of the working chambers on either side of the piston results in a displacement of the piston and thus in a displacement of the running carriage in the opposite direction. The drawback of such a linear guide equipped with a pneumatic drive is its very complex structure.
The document FR 2 704 993 shows a linear guide equipped with an electric linear drive in whose profiled support made, for example, of aluminium, several driven carriages that are mechanically independent of each other can roll through rollers on one common rail. The rail is integrally formed on the profiled support. A carriage configured as a vertical plate extends through aligned slots of the rail and of the profiled support to the outside. On the ends of the running carriage situated on the outside, it is possible, for instance, to hang curtains or sliding doors that have to be moved. Measures for closing the free regions of the slots of the profiled support that are situated between the successive carriages are not provided in this linear guide.
The object of the invention is to create a compact linear bearing of a simple structure that can be economically manufactured.
The invention achieves this object by the fact that the longitudinal opening is closed by a cover strip made of anti-corrosive magnetic steel for which permanent magnet strips are inserted into grooves of the guide housing. By the use of an extrusion molded aluminium profile as a guide housing, a combination of a driven linear guide unit with a weight-optimized, inherently rigid support profile is obtained.
The primary motor component may be arranged in the running carriage and the secondary motor component in the guide housing. The longitudinal opening can be closed by a cover strip of anti-corrosive magnetic steel for which permanent magnet strips can be inserted into grooves of the guide housing.
Besides a drawn support profile of aluminium with one or more integrated profiled rails, the linear guide of the invention may contain the following components: a length measuring system, one or more running carriages with guide carriages, a drive in the form of a linear motor surrounded by the support profile, two end plates and a cover in the form of a corrosion-resistant steel strip.
Examples of embodiment of the invention are represented in the drawings and will be described more closely in the following.
A linear guide according to the invention illustrated in
The guide carriages 3 serve to displaceably mount a running carriage 5 that is secured by screws 6 on the guide rail-distal top surfaces of the guide carriages 3. The running carriage 5 is situated on the outside of the guide housing 1 and extends through two longitudinal side openings 7 and one longitudinal central opening 8 into the guide housing 1 for connection to the guide carriages 3 and for connection, in a central reception space 9 of the guide housing 1, to a primary motor component 10 of a drive. Opposite the primary motor component 10 that is fixed on the running carriage 5 is situated a secondary motor component 11 that is fixed in the guide housing 1. These two components constitute an electric drive motor for the displacement of the running carriage 5 in the longitudinal direction of the guide housing 1.
Outside of the running carriage 5, each of the longitudinal side openings 7 is closed with a cover strip 12 while for the central longitudinal opening 8, a cover strip 13 is provided. The cover strips 12 and 13 are inserted through slot-like openings of the running carriage 5 and are fixed in the longitudinal direction of the guide rail on the guide housing 1 so that, when the running carriage 5 is displaced in the longitudinal direction of the guide housing 1, it executes a relative movement with regard to the cover strips 12 and 13. Outside of the running carriage 5, the cover strips 12 and 13 are retained on the guide housing 1 with the help of permanent magnet strips 14 that are arranged in longitudinal grooves of the guide housing 1. The linear guide according to
The linear guide according to
The longitudinal openings of the profiled support are closed by anti-corrosive magnetic steel cover strips to prevent the entry of dirt particles. The cover strips are stationary and pass through the running carriage when this travels. In order that the covers are in optimum contact with the extrusion molded profile and do not come off even in an overhead installation, the permanent magnet strips that pull the steel strip to the surface of the profiled support are inserted into appropriate grooves of the profiled support.
The motors in all the embodiments can be asynchronous motors, synchronous motors or reluctance motors and D.C. motors. The essential feature of the solution of the invention is the combination of a driven linear guide unit with a weight-optimized, inherently rigid profiled support that is configured as an aluminium extrusion molded profile and has a drive in the form of a linear motor. Not only the motor but also a length measuring system can be arranged together with the profiled rail guide in the interior of the guide housing wherein all the openings are closed with the help of cover strips so that an optimum protection of all the components from dirt is guaranteed. With this combination, the advantages of a belt-driven linear guide can be coupled with those of a linear guide driven by a ball screw drive.
The advantages of a belt-driven linear guide like high speed and dynamics are thus combined with the advantages of a linear guide with a ball screw drive such as high rigidity of the drive, high exactitude of positioning and repeating accuracy. At the same time, the price of such a linear guide is comparable to that of a guide with a ball screw drive. Due to the T-grooves provided in the profiled support, the profile can be screwed by the user in a simple manner on common commercial structural profiles.
1 Guide housing
2 Guide rail
3 Guide carriage
4 Ball circuit
5 Running carriage
6 Screw
7 Longitudinal side opening
8 Longitudinal central opening
9 Central reception space
10 Primary motor component
11 Secondary motor component
12 Cover strip
13 Cover strip
14 Permanent magnet strip
15 Central plane
16 Guide housing
17 Running carriage
18 Longitudinal opening
19 Longitudinal opening
20 Length measuring strip
Lutz, Peter, Rudy, Dietmar, Baalmann, Klaus, Ruffing, Roland
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